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Echo-cancellation in a rapidly time varying environment

机译:在时变迅速的环境中消除回声

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This paper presents a new approach for system identification of rapidly time varying systems with applications to echo-cancellation in a cabin environment. These situations arise when the coherence time is significant relative to the system time-scale. Under these conditions it is not meaningful to track the system dynamics exactly as this would lead to significant variability in performance. The novelty of our approach relies on deliberately undermodeling the system in a lower complexity model class and reliably tracking the reduced order model. From a theoretical standpoint, under-modeling requires dealing with residual dynamics in addition to measurement noise. A novel technique based on first annihilating the residual error by exploiting the inherent 'orthogonal' decomposition between model class and unmodeled dynamics is obtained. We quantify the estimation error as a function of the rate of variation, complexity of the model class and the undermodeling error.
机译:本文提出了一种快速识别时变系统的新方法,并将其应用于机舱环境中的回声消除。当相干时间相对于系统时标重要时,就会出现这些情况。在这些条件下,准确跟踪系统动态是没有意义的,因为这将导致性能的显着变化。我们方法的新颖性在于在较低复杂度的模型类中故意对系统进行欠建模,并可靠地跟踪降阶模型。从理论上讲,建模不足除了处理噪声外还需要处理残余动力学。通过利用模型类和未建模动力学之间固有的“正交”分解,获得了一种首先消除残差的新技术。我们将估计误差量化为变化率,模型类别的复杂性和欠建模误差的函数。

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